Department of Materials Science, Fudan University, Shanghai 200433, P. R. China.
Nanoscale. 2018 Jul 5;10(25):12003-12010. doi: 10.1039/c8nr02924e.
The integration of high flexibility, high energy density and wide voltage window for solid-state supercapacitors remains a big challenge to date. Herein, ultrathin CoSeO3·H2O nanoribbons (thickness: ∼14 nm) with typical pseudocapacitive behavior were synthesized in a high yield by a solution-based refluxing process. Freestanding CoSeO3·H2O ribbon/hydroxylated multi-walled carbon nanotube (HWCNT) paper could be fabricated through a vacuum-assisted filtration strategy owing to its ultrathin nature, ribbon-like morphology and inherent flexibility. Unexpectedly, an asymmetric supercapacitor constructed from this as-prepared CoSeO3·H2O/HWCNT hybrid paper exhibits a high 2.4 V voltage window as well as excellent rate capability and cycle performance. The energy density of this device is 132.3 W h kg-1 at 960 W kg-1 with a stable cycling ability of up to 10 000 cycles, which is superior to those of almost all previously reported asymmetric supercapacitors based on freestanding paper. Furthermore, this supercapacitor shows outstanding bendability and mechanical stability at different bending degrees from 0° to 180° with no changes in capacitive behavior. Our work provides new opportunities for developing high-performance asymmetric supercapacitors with high energy density, wide voltage window, and high flexibility in a novel CoSeO3·H2O system for potential applications including flexible displays, collapsible mobile phones, and wearable equipment.
用于固态超级电容器的高灵活性、高能量密度和宽电压窗口的集成仍是一个巨大的挑战。在此,通过基于溶液的回流工艺以高产率合成了具有典型赝电容行为的超薄 CoSeO3·H2O 纳米带(厚度:∼14nm)。由于其超薄、带状形态和固有柔韧性,通过真空辅助过滤策略可以制造出独立的 CoSeO3·H2O/羟基化多壁碳纳米管(HWCNT)纸。出乎意料的是,由这种制备的 CoSeO3·H2O/HWCNT 混合纸构建的非对称超级电容器具有 2.4 V 的高电压窗口以及出色的倍率性能和循环性能。该器件的能量密度在 960 W kg-1 时为 132.3 W h kg-1,具有高达 10000 次循环的稳定循环能力,优于几乎所有以前报道的基于独立纸张的非对称超级电容器。此外,该超级电容器在 0°至 180°的不同弯曲度下表现出出色的柔韧性和机械稳定性,电容行为没有变化。我们的工作为在新型 CoSeO3·H2O 系统中开发具有高能量密度、宽电压窗口和高灵活性的高性能非对称超级电容器提供了新的机会,该超级电容器可应用于柔性显示器、可折叠手机和可穿戴设备等领域。